Question

If $3A+4B^{\prime }=$$\left[\begin{array}{ccc}7& -10& 17\\ 0& 6& 31\end{array}\right]$ and $2B-3A^{\prime }$ $\left[\begin{array}{cc}-1& 18\\ 4& 0\\ -5& -7\end{array}\right]$ then $B=$

• A. $\left[\begin{array}{cc}-1& -18\\ 4& -16\\ -5& -7\end{array}\right]$
• B. $\left[\begin{array}{cc}1& 3\\ -1& 1\\ 2& 4\end{array}\right]$
• C. $\left[\begin{array}{cc}1& 3\\ -1& 1\\ 2& -4\end{array}\right]$
• D. $\left[\begin{array}{cc}1& -3\\ -1& 1\\ 2& 4\end{array}\right]$

Answer 1

Answer: (B)

$3A+4B^{\prime }=\left[\begin{array}{ccc}7& -10& 17\\ 0& 6& 31\end{array}\right]\dots \left(1\right)$
${\left(2B-3A^{\prime }\right)}^{\prime }={\left(2B\right)}^{\prime }-{\left(3A^{\prime }\right)}^{\prime }=2B^{\prime }-3A$
$\Rightarrow 2B^{\prime }-3A=\left[\begin{array}{ccc}-1& 4& -5\\ 18& 0& -7\end{array}\right]\dots \left(2\right)$
Adding 1 and 2, we get $6B^{\prime }=\left[\begin{array}{ccc}6& -6& 12\\ 18& 6& 24\end{array}\right]$
$\Rightarrow B^{\prime }=\left[\begin{array}{ccc}1& -1& 2\\ 3& 1& 4\end{array}\right]\therefore B=\left[\begin{array}{cc}1& 3\\ -1& 1\\ 2& 4\end{array}\right]$